Ho-Sang Jeong
Korea University · 工学
研究室紹介
Professor Ho-Sang Jeong's research lab specializes in the development of advanced nanomaterials and biosensors for biomedical and environmental applications. The lab focuses on creating smart, label-free sensing platforms using surface-enhanced Raman spectroscopy (SERS), plasmonic nanostructures, and biocompatible materials for early disease diagnosis and real-time monitoring. Key research directions include targeted cancer therapy using nanocarriers, wearable and implantable sensors for physiological monitoring, and rapid on-site detection of environmental contaminants such as microplastics and pesticides. The integration of biomolecules, nanomaterials, and functional substrates enables highly sensitive, selective, and clinically translatable diagnostic solutions.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15Melanoma skin cancer is one of the most dangerous skin cancers and the main cause of skin-cancer-related mortality. Hyaluronic acid (HA) has been used as an effective transdermal delivery carrier of chemical drugs and biopharmaceuticals. In this work, a nanographene oxide-HA conjugate (NGO-HA) was synthesized for photothermal ablation therapy of melanoma skin cancer using a near-infrared (NIR) laser. Confocal microscopy and ex vivo bioimaging clearly visualized the remarkable transdermal deliver
A wearable surface-enhanced Raman scattering (SERS) sensor has been developed as a patch type to utilize as a molecular sweat sensor. Here, the SERS patch sensor is designed to comprise a sweat-absorbing layer, which is an interface to the human skin, an SERS active layer, and a dermal protecting layer that prevents damage and contaminations. A silk fibroin protein film (SFF) is a basement layer that absorbs aqueous solutions and filtrates molecules larger than the nanopores created in the β-she
Metabolomics shows tremendous potential for the early diagnosis and screening of cancer. For clinical application as an effective diagnostic tool, however, improved analytical methods for complex biological fluids are required. Here, we developed a reliable rapid urine analysis system based on surface-enhanced Raman spectroscopy (SERS) using 3D-stacked silver nanowires (AgNWs) on a glass fiber filter (GFF) sensor and applied it to the diagnosis of pancreatic cancer and prostate cancer. Urine sam
Abstract Microplastics (MPs) are present not only in the environment but also in drinking water, food, and consumer products. These MPs being toxic, carcinogenic, endocrine disrupting, and genetic risk creators cause several diseases. Despite various approaches, the development of onsite applicable, facile, and quick MP detection methods is still challenging. Here, 3D‐plasmonic gold nanopocket (3D‐PGNP) nanoarchitecture is formed on a paper substrate for simultaneous MP filtration and detection.
Titanium (Ti) and its alloys with a high mechanical strength and a small diameter can be effectively exploited for minimally invasive dental implantation. Here, we report a multipass caliber-rolled Ti alloy of Ti13Nb13Zr (MPCR-TNZ) with a high mechanical strength and strong fatigue characteristics. For further dental applications, MPCR-TNZ was surface-modified with reduced graphene oxide (RGO) and loaded with osteogenic dexamethasone (Dex) via π-π stacking on the graphitic domain of RGO. The Dex
A surface-enhanced Raman scattering (SERS) sensor comprising silver nanowires (AgNWs) and genetically engineered M13 bacteriophages expressing a tryptophan-histidine-tryptophan (WHW) peptide sequence (BPWHW) was fabricated by simple mixing of BPWHW and AgNW solutions, followed by vacuum filtration onto a glass-fiber filter paper (GFFP) membrane. The AgNWs stacked on the GFFP formed a high density of SERS-active hot spots at the points of nanowire intersections, and the surface-coated BPWHW funct
High performance twisted and coiled soft actuator with spandex fiber for artificial muscles, Yang, Sang Yul, Cho, Kyeong Ho, Kim, Youngeun, Song, Min-Geun, Jung, Ho Sang, Yoo, Ji Wang, Moon, Hyungpil, Koo, Ja Choon, Nam, Jae-do, Choi, Hyouk Ryeol
A nano graphene oxide–hyaluronic acid (NGO–HA) conjugate was successfully prepared for target specific delivery of an anti-cancer drug loaded by π–π stacking via HA receptor mediated endocytosis. In vitro tests confirmed the pH dependent drug release and target specific anti-cancer effect of the complex.
A bioinspired nanoflower structure was fabricated on microneedle (MN) to utilize as a surface-enhanced Raman scattering (SERS) sensor for intradermal sensing applications. On the surface of poly (lactic-co-glycolic acid) (PLGA) MN, polydopamine (PD) was coated as an interlayer, and the hydroxyapatite (HA) which is a flower-like-structured bone mineral was crystalized via a bio-mineralization in simulated body fluid (SBF). Au was deposited on the HA-coated microneedle (HA-MN) to generate SERS eff
A label-free detection method for noninvasive biofluids enables rapid on-site disease screening and early-stage cancer diagnosis by analyzing metabolic alterations. Herein, we develop three-dimensional plasmonic hexaplex nanostructures coated on a paper substrate (3D-PHP). This flexible and highly absorptive 3D-PHP sensor is integrated with commercial saliva collection tube to create an efficient on-site sensing platform for lung cancer screening via surface-enhanced Raman scattering (SERS) meas